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| Ferumoxytol is an intravenous iron replacement product composed of superparamagnetic iron oxide nanoparticles coated with a carbohydrate shell. It was primarily developed to treat iron deficiency anemia, particularly in patients with chronic kidney disease (CKD). The nanoparticle formulation offers both therapeutic iron supplementation and a potential role as a magnetic resonance imaging (MRI) contrast agent because of its unique magnetic properties. Because iron is essential for cell proliferation, there has been some concern about the theoretical risk of providing additional iron to environments where tumor cells might use it for growth. Nevertheless, the clinical significance of this in the context of ferumoxytol administration remains controversial and is not clearly established by current evidence. There has been some research combining Ferumoxytol with high dose Vitamin C. Some laboratory studies have examined whether the combination of ferumoxytol and vitamin C can enhance anticancer effects. For instance, exposure of cancer cell lines or tumor models to this combination has been evaluated to see if there is an increase in ROS-mediated cytotoxicity compared to using either agent alone. Ferumoxytol — an intravenously administered, carbohydrate-coated superparamagnetic iron oxide nanoparticle used as an iron-replacement drug. It consists of a non-stoichiometric magnetite core surrounded by a polyglucose sorbitol carboxymethylether coating, with an overall colloidal particle size of approximately 17–31 nm. The principal US brand is Feraheme, with additional ferumoxytol products now approved. Clinically, ferumoxytol is used to treat iron-deficiency anemia in adults with chronic kidney disease or intolerance or inadequate response to oral iron. Its strong magnetic susceptibility also permits off-label blood-pool, vascular, inflammatory and tumor-associated macrophage MRI, although it is not FDA-approved as an MRI contrast agent. Experimental anticancer activity is distinct from its approved hematologic use and remains investigational. Primary mechanisms (ranked):
Bioavailability / PK relevance: Ferumoxytol must be administered intravenously and has no meaningful oral bioavailability. The nanoparticle initially remains largely within the vascular compartment and is subsequently cleared primarily by macrophages of the reticuloendothelial system. Its apparent plasma half-life is approximately 15 hours at therapeutic doses, while intracellular iron persists much longer after macrophage uptake. The standard labeled regimen is 510 mg elemental iron followed by a second 510 mg infusion 3–8 days later. Tumor delivery depends on vascular permeability, perfusion, macrophage abundance and phagocytic uptake; heterogeneous intratumoral accumulation limits extrapolation from cell culture or highly macrophage-rich animal tumors. In-vitro vs systemic exposure relevance: Free iron concentrations and direct nanoparticle-to-cell ratios used in many mechanistic studies do not reproduce the protein corona, vascular compartmentalization, macrophage sequestration and regulated iron handling occurring in patients. Direct cancer-cell cytotoxicity often requires high local nanoparticle exposure, prolonged incubation or an added pro-oxidant such as pharmacologic ascorbate. Clinically achievable ferumoxytol exposure is sufficient for iron replacement and prolonged MRI effects, but autonomous anticancer activity at approved anemia doses has not been established. Clinical evidence status: Approved intravenous treatment for iron-deficiency anemia; off-label human MRI experience is substantial but does not constitute an approved imaging indication. Anticancer evidence is predominantly cellular and animal-model based. A first-in-human phase I glioblastoma study is evaluating ferumoxytol plus pharmacologic ascorbate with radiation and temozolomide, primarily for safety, tolerability and dose determination. There is presently no randomized evidence demonstrating improved cancer survival, and ferumoxytol should not be classified as an established anticancer drug or standard radiosensitizer. Ferumoxytol Mechanistic Profile
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| The Fenton reaction is a chemical reaction that involves the catalytic decomposition of hydrogen peroxide (H2O2) by iron ions (Fe2+ or Fe3+). This reaction produces highly reactive oxygen species (ROS), including hydroxyl radicals (·OH) and superoxide anions (O2·-). Cancer Progression: Increased oxidative stress from the Fenton reaction can promote cancer cell proliferation, survival, and metastasis. ROS can activate various signaling pathways that support tumor growth and resistance to apoptosis. Therapeutic Target: The Fenton reaction has been explored as a potential therapeutic target. Strategies to manipulate iron levels or enhance the production of ROS in cancer cells are being investigated to selectively induce cell death in tumors. Formula Fe2+ + H2O2 → Fe3+ + HO• + OH− Fe3+ + H2O2 → Fe2+ + HOO• + H+ 2 H2O2 → HO• + HOO• + H2O net reaction – The dysregulation of iron metabolism in certain cancers might serve as a biomarker for targeted treatments that employ Fenton reaction-based strategies. – Researchers are investigating strategies that harness or amplify the Fenton reaction to selectively kill cancer cells. - With more available iron, the Fenton reaction can be enhanced, resulting in increased production of hydroxyl radicals. Which can lead to cancer cell death. See the ROS target for more information |
| 6891- | Fer, | Iron oxide nanoparticles inhibit tumor growth by ferroptosis in diffuse large B-cell lymphoma |
| - | vitro+vivo, | lymphoma, | NA |
Query results interpretion may depend on "conditions" listed in the research papers. Such Conditions may include : -low or high Dose -format for product, such as nano of lipid formations -different cell line effects -synergies with other products -if effect was for normal or cancerous cells
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